Event-based time label propagation for automatic dating of news articles | |
Ge, Tao ; Chang, Baobao ; Li, Sujian ; Sui, Zhifang | |
2013 | |
英文摘要 | Since many applications such as timeline summaries and temporal IR involving temporal analysis rely on document timestamps, the task of automatic dating of documents has been increasingly important. Instead of using feature-based methods as conventional models, our method attempts to date documents in a year level by exploiting relative temporal relations between documents and events, which are very effective for dating documents. Based on this intuition, we proposed an event-based time label propagation model called confidence boosting in which time label information can be propagated between documents and events on a bipartite graph. The experiments show that our event-based propagation model can predict document timestamps in high accuracy and the model combined with a MaxEnt classifier outperforms the state-of-the-art method for this task especially when the size of the training set is small. ? 2013 Association for Computational Linguistics.; EI; 0 |
语种 | 英语 |
内容类型 | 其他 |
源URL | [http://ir.pku.edu.cn/handle/20.500.11897/294633] |
专题 | 信息科学技术学院 |
推荐引用方式 GB/T 7714 | Ge, Tao,Chang, Baobao,Li, Sujian,et al. Event-based time label propagation for automatic dating of news articles. 2013-01-01. |
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